长江流域资源与环境 >> 2021, Vol. 30 >> Issue (4): 936-945.doi: 10.11870/cjlyzyyhj202104016

• 生态环境 • 上一篇    下一篇

平寨水库夏季热分层期间水化学及溶解无机碳变化

刘贤梅 1,2,周忠发 1,2*,张昊天 1,2,但雨生 1,2,蒋翼 1,2   

  1. (1.贵州师范大学地理与环境科学学院/喀斯特研究院,贵州 贵阳 550001;2.贵州省喀斯特山地生态环境国家重点实验室培育基地,贵州 贵阳 550001)
  • 出版日期:2021-04-20 发布日期:2021-05-17

Changes of Hydrochemistry and Dissolved Inorganic Carbon During #br# Thermal Stratification in Pingzhai Reservoir

LIU Xianmei 1,2,ZHOU Zhongfa 1,2,ZHANG Haotian 1,2,DAN Yusheng 1,2,JIANG Yi 1,2   

  1. (1. School of Geography & Environmental Science/ School of Karst Science, Guizhou Normal University, Guiyang 550001, China;2.State Key Laboratory Incubation Base for Karst Mountain Ecology Environment of Guizhou Province, Guiyang 550001, China)
  • Online:2021-04-20 Published:2021-05-17

摘要: 为探究喀斯特地质环境下的水库水化学及溶解无机碳的空间特征,选取了典型喀斯特地区贵州省黔中水利枢纽工程水源区平寨水库作为研究区,于夏季热分层期间(2019年7月)对平寨水库进行分层采样,对水体主要理化数据及溶解的无机碳碳同位素进行分析。结果表明:(1)平寨水库在夏季存在明显的热分层现象:表水层(0~-10 m)、温跃层(-10~-30 m)、恒温层(-30~-60 m)。水温随着深度的增加呈下降趋势,最后趋于稳定(T(平均):25.62~12.43℃),水体pH值、溶解氧(DO)、电导率(EC)、叶绿素a(Chl-a)等物理化学性质在垂向上也出现了明显的分层;(2)平寨水库水化学类型为HCO3+SO4-Ca型,其水体水化学主要受碳酸盐岩平衡体系控制;(3)水体溶解无机碳(DIC)及其同位素组成(δ13CDIC)变化:DIC浓度随水体深度增加而逐渐升高(DIC(平均):1.8~3.03 mg·L-1),δ13CDIC呈偏轻趋势(δ13CDIC(平均):-6.23‰~-11.45‰)。分析认为,太阳辐射、水生生物的分布状况及其光合作用和呼吸作用强度、有机质分解程度等在不同深度存在差异,使水体理化性质和DIC出现了显著的分层,进而影响δ13CDIC的分馏。碳酸盐岩的溶解与沉淀对DIC含量及其稳定同位素分馏影响不大。

Abstract: In order to explore the spatial characteristics of reservoir hydrochemistry and dissolved inorganic carbon in karst geological environment. Pingzhai Reservoir is selected as the study area which is the water source of Qianzhong Water Conservancy Project in Guizhou Province located in typical karst area. Stratified sampling of Pingzhai Reservoir is conducted during the summer thermal stratification period (July 2019), analyzing the main physical and chemical data and dissolved inorganic carbon isotope of water bodies. The results show that: 1) Pingzhai Reservoir has obvious thermal stratification in summer: surface water layer (1~-10 m), thermocline (-10~-30℃ m), constant temperature layer (-30~-60 m). The water temperature decreases with the increase of depth, and finally stabilizes (T (average): 25.62~12.43℃). The pH, dissolved oxygen (DO), electrical conductivity (EC), chlorophyll a (Chl-a) and other physical and chemical properties of water also show obvious stratification in vertical direction. 2) The hydrochemistry type of Pingzhai Reservoir is HCO3+SO4-Ca, and its hydrochemistry is mainly controlled by the carbonate balance system; 3)Change of dissolved inorganic carbon. (DIC) and its isotopic composition (δ13CDIC) in water: DIC concentration gradually increased with the increase of water depth (DIC (average): 1.8~3.03℃mmol/L), δ13CDIC shows a slight trend (δ13CDIC (average): -6.23‰ ~-11.45‰). According to the analysis, solar radiation, the distribution of aquatic organisms, photosynthesis, respiration intensity and the degree of decomposition of organic matter are different at different depths, resulting in significant stratification of the physicochemical properties of water and DIC, which further affects the fractionation of δ13CDIC. The dissolution and precipitation of carbonate rocks have little effect on the content of DIC and its stable isotope fractionation.

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